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在 Lotus japonicus 中铵的再同化。

Reassimilation of ammonium in Lotus japonicus.

机构信息

Departamento de Bioquímica Vegetal y Biología Molecular, Facultad de Química, C/ Profesor García González, 1, 41012-Sevilla, Spain.

Institute of Biology and Ecology, Faculty of Science, P.J. Šafárik University, Mánesova 23, SK-04001 Košice, Slovak Republic.

出版信息

J Exp Bot. 2014 Oct;65(19):5557-66. doi: 10.1093/jxb/eru260. Epub 2014 Jun 19.

DOI:10.1093/jxb/eru260
PMID:24948681
Abstract

This review summarizes the most recent results obtained in the analysis of two important metabolic pathways involved in the release of internal sources of ammonium in the model legume Lotus japonicus: photorespiratory metabolism and asparagine breakdown mediated by aparaginase (NSE). The use of photorespiratory mutants deficient in plastidic glutamine synthetase (GS2) enabled us to investigate the transcriptomics and metabolomic changes associated with photorespiratory ammonium accumulation in this plant. The results obtained indicate the existence of a coordinate regulation of genes involved in photorespiratory metabolism. Other types of evidence illustrate the multiple interconnections existing among the photorespiratory pathway and other processes such as intermediate metabolism, nodule function, and secondary metabolism in this plant, all of which are substantially affected in GS2-deficient mutants because of the impairment of the photorespiratory cycle. Finally, the importance of asparagine metabolism in L. japonicus is highlighted because of the fact that asparagine constitutes the vast majority of the reduced nitrogen translocated between different organs of this plant. The different types of NSE enzymes and genes which are present in L. japonicus are described. There is a particular focus on the most abundant K(+)-dependent LjNSE1 isoform and how TILLING mutants were used to demonstrate by reverse genetics the importance of this particular isoform in plant growth and seed production.

摘要

这篇综述总结了在分析模型豆科植物百脉根中两种重要的释放内部铵源的代谢途径(光呼吸代谢和天冬酰胺分解)的最新研究结果:天冬酰胺酶(NSE)介导的途径。使用缺乏质体谷氨酰胺合成酶(GS2)的光呼吸突变体,我们能够研究与植物中光呼吸铵积累相关的转录组学和代谢组学变化。结果表明,与光呼吸代谢相关的基因存在协调调控。其他类型的证据表明,在该植物中,光呼吸途径与其他过程之间存在多种相互联系,如中间代谢、根瘤功能和次生代谢,由于光呼吸循环的破坏,GS2 缺陷突变体中这些过程都受到了极大的影响。最后,由于天冬酰胺构成了该植物不同器官之间转运的还原氮的绝大部分,因此强调了天冬酰胺代谢在百脉根中的重要性。本文描述了百脉根中存在的不同类型的 NSE 酶和基因。特别关注最丰富的 K(+)-依赖型 LjNSE1 同工型,以及如何使用 TILLING 突变体通过反向遗传学证明这种特殊同工型在植物生长和种子生产中的重要性。

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2
Genes for asparagine metabolism in Lotus japonicus: differential expression and interconnection with photorespiration.豌豆中天门冬酰胺代谢的基因:差异表达及其与光呼吸的相互关系。
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